Tetrakis(trimethylsilyl)silane as a standard compound for fast spinning Solid-State NMR experiments

IF 2 3区 化学 Q3 BIOCHEMICAL RESEARCH METHODS
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Abstract

The development of magic angle spinning (MAS) at rates ranging from 30 kHz to greater than 100 kHz has substantially advanced solid-state nuclear magnetic resonance (SSNMR) spectroscopy 1H-detection methods. The small rotors required for such MAS rates have a limited sample volume and low 13C-detection sensitivity, rendering the traditional set of standard compounds for SSNMR insufficient or highly inconvenient for shimming and magic-angle calibration. Additionally, the reproducibility of magic angle setting, chemical shift referencing, and probe position can be especially critical for SSNMR experiments at high fields. These conditions suggest the need for a high signal-to-noise ratio (SNR) 1H-detection standard compound, which is preferably multi-purpose, to simplify instrument set up for ultra-fast MAS SSNMR instruments at high magnetic fields. In this study, we present the results for setting magic angle and shimming using tetrakis(trimethylsilyl)silane (TTMSS, or TKS), a tetramethylsilane (TMS) analogue, at near 40 kHz and demonstrate that we can achieve favorable results in less time but with equal or superior precision as traditional KBr and adamantane standards. The high SNR and TMS-like chemical shift of TKS also opens the possibilities for using TKS as an internal standard with biological samples. A single rotor containing a four-component mixture of TKS, adamantane, uniformly 13C, 15N-labeled N-acetyl valine and KBr was used to perform a complete configuration and calibration of a SSNMR probe without sample changes. We anticipate TKS as a standard compound to be especially effective at very high MAS conditions and to greatly simplify the instrument set up for high and ultra-high field SSNMR instruments.

Abstract Image

四(三甲基硅基)硅烷作为快速旋转固态核磁共振实验的标准化合物。
速率从 30 kHz 到超过 100 kHz 的魔角旋转(MAS)技术的发展大大推进了固态核磁共振(SSNMR)光谱 1H 检测方法的发展。这种 MAS 速率所需的小型转子具有样品体积有限和 13C 检测灵敏度低的特点,使得传统的 SSNMR 标准化合物集不足以或极不方便进行垫片和魔角校准。此外,魔角设置、化学位移参照和探针位置的可重复性对于高场 SSNMR 实验尤为重要。这些条件表明,需要一种高信噪比(SNR)的 1H 检测标准化合物,最好是多用途的,以简化高磁场下超快 MAS SSNMR 仪器的设置。在本研究中,我们介绍了在接近 40 kHz 频率下使用四甲基硅烷(TMS)类似物四(三甲基硅基)硅烷(TTMSS,或 TKS)设置魔幻角和垫片的结果,并证明我们可以在更短的时间内获得与传统 KBr 和金刚烷标准相同或更高精度的良好结果。TKS 的高信噪比和类似 TMS 的化学位移也为将 TKS 用作生物样品的内标提供了可能性。我们使用含有 TKS、金刚烷、13C、15N 标记的 N-乙酰缬氨酸和 KBr 四种成分混合物的单个转子,在不改变样品的情况下完成了 SSNMR 探针的完整配置和校准。我们预计 TKS 作为标准化合物在极高 MAS 条件下会特别有效,并能大大简化高场和超高场 SSNMR 仪器的设置。
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来源期刊
CiteScore
3.80
自引率
13.60%
发文量
150
审稿时长
69 days
期刊介绍: The Journal of Magnetic Resonance presents original technical and scientific papers in all aspects of magnetic resonance, including nuclear magnetic resonance spectroscopy (NMR) of solids and liquids, electron spin/paramagnetic resonance (EPR), in vivo magnetic resonance imaging (MRI) and spectroscopy (MRS), nuclear quadrupole resonance (NQR) and magnetic resonance phenomena at nearly zero fields or in combination with optics. The Journal''s main aims include deepening the physical principles underlying all these spectroscopies, publishing significant theoretical and experimental results leading to spectral and spatial progress in these areas, and opening new MR-based applications in chemistry, biology and medicine. The Journal also seeks descriptions of novel apparatuses, new experimental protocols, and new procedures of data analysis and interpretation - including computational and quantum-mechanical methods - capable of advancing MR spectroscopy and imaging.
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